A dimming switch device includes a key switch having a switching element controlled to be open-circuit or closed-circuit, a rectifying diode to rectify input ac voltages according to the state of the switching element, a power state coupling circuit, a controller, and a driving circuit. The key switch and the power state coupling circuit together generate a signal to inform the controller whether the switching element is open-circuit or closed-circuit through a pair of power lines that transmit both the signal and the power required by the dimming switch device and an electric load driven by the driving circuit. Methods for determining user operation events over the dimming switch device are also provided as routines like: reset, one-click, N-click, so that a lamp load can be turned on and off and adjust brightness according to the user operation events.
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7. A method for determining user operation events of a dimming switch device, comprising the following steps:
providing a dimming switch device comprising a key switch which is operated to be in a first state or a second state, wherein the key switch outputs a signal to indicate whether the key switch is in the first state or the second state;
defining a long-click event as: when the key switch has entered the first state over a t0 time interval;
providing a controller, wherein based on said signal, the controller waits for the long-click event to occur, and once the long-click event occurs, the controller executes a re-start routine, and otherwise the controller continues to wait for the long-click event to occur.
10. A method for determining user operation events of a dimming switch device, comprising the following steps:
providing a dimming switch device comprising a key switch which is operated to be in a first state or a second state, wherein the key switch outputs a signal to indicate whether the key switch is in the first state or the second state;
defining a triggering event as: when the key switch has entered the first state over a t1 time interval;
defining a re-triggering event as: after the triggering event occurred, the key switch had entered the second state not yet over a t2 interval, and then the key switch entered the first state again and has stayed over the t1 interval;
defining a single-click event as: after the triggering event occurred, the key switch has entered the second state over a t3 interval, wherein the t3 interval is longer than the t2 interval;
providing a controller, wherein based on said signal, the controller checks if the triggering event occurs;
when the triggering event occurs, the controller checks if the re-triggering event occurs;
when the re-triggering event doesn't occur, the controller checks if the single-click event occurs, and when the single-click event occurs, the controller executes an ON/OFF routine.
13. A method for determining user operation events of a dimming switch device, comprising the following steps:
providing a dimming switch device comprising a key switch which is operated to be in a first state or a second state, wherein the key switch outputs a signal to indicate whether the key switch is in the first state or the second state;
defining a triggering event as: when the key switch has entered the first state over a t1 time interval;
defining a re-triggering event as: after the triggering event occurred, the key switch had entered the second state not yet over a t2 interval, and then the key switch entered the first state again and has stayed over the t1 interval;
defining a consecutive-N-clicks event (N being a positive integer greater than 1) as: after the re-triggering event occurred, N−2 triggering events occurred, until the key switch has entered the second state over the t3 interval;
providing a controller, wherein based on said signal
the controller checks if the triggering event occurs;
when the triggering event occurs, the controller checks if the re-triggering event occurs;
when the re-triggering event occurs, the controller checks if the consecutive-N-clicks event occurs, and when the consecutive-N-clicks event occurs, the controller executes a dimming routine.
1. A dimming switch device comprising:
a key switch comprising
a common input terminal;
a common output terminal;
a switching element having an input terminal and an output terminal, wherein the switching element is controllable to be open-circuit or closed-circuit; and
a rectifying diode having an input terminal and an output terminal;
wherein the input terminal of the switching element and the input terminal of the rectifying diode are electrically connected to the common input terminal and further electrically connected to one polarity of an ac power source; and the output terminal of the switching element and the output terminal of the rectifying diode are electrically connected to the common output terminal; and
a power state coupling circuit comprising:
a pair of input terminals electrically connected to the common output terminal of the key switch and the other polarity of said ac power source; and
an output terminal;
wherein the power state coupling circuit converts an ac voltage of the pair of input terminals to a dc signal which is transmitted to the output terminal of the power state coupling circuit; and
a controller comprising:
an input pin electrically connected to the output terminal of the power state coupling circuit;
wherein the controller determines whether the switching element is open-circuit or closed-circuit according to voltage waveforms from the input pin.
2. The device as claimed in
3. The device as claimed in
4. The device as claimed in
a wireless communication interface, which receives and transmits wireless signals;
wherein the controller determines methods and parameters for determining the user operation events according to information of the wireless signals received by the wireless communication interface.
5. The device as claimed in
a driving circuit comprising:
a pair of ac input terminals electrically connected to the common output terminal of the key-switch and the other polarity of the ac power source;
a signal input terminal;
a pair of power output terminals for electrically connecting to an electric load; and
an output pin of the controller which is electrically connected to the signal input terminal of the driving circuit, wherein the controller determines voltage waveforms of the output pin as well as voltage waveforms of the pair of power output terminals of the driving circuit according to the voltage waveforms of the input pin, so as to control the electric load.
6. The device as claimed in
an ac-to-dc power supply, which inputs ac power from the common output terminal of the key switch and the other polarity of the ac power source and converts the ac power into dc power, and supplies the dc power to the power state coupling circuit, the driving circuit, and the controller.
8. The method as claimed in
the first state is a closed state and the second state is an open state; and
the t0 time interval is more than 8 seconds.
9. The method as claimed in
the first state is an open state and the second state is a closed state; and
the t0 time interval is more than 8 seconds.
11. The method as claimed in
the first state is a closed state and the second state is an open state; and
the t1 time interval is between 0.05 second and 3 seconds, the t2 time interval is 1 second, and the t3 time interval is longer than the t2 time interval by at least 0.001 second.
12. The method as claimed in
the first state is an open state and the second state is a closed state; and
the t1 time interval is between 0.05 second and 3 seconds, the t2 time interval is 1 second, and the t3 time interval is longer than the t2 time interval by at least 0.001 second.
14. The method as claimed in
the first state is a closed state and the second state is an open state; and
the t1 time interval is between 0.05 second and 3 seconds, the t2 time interval is 1 second, and the t3 time interval is longer than the t2 time interval by at least 0.001 second.
15. The method as claimed in
the first state is an open state and the second state is a closed state; and
the t1 time interval is between 0.05 second and 3 seconds, the t2 time interval is 1 second, the t3 time interval is longer than the t2 time interval by at least 0.001 second.
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The present invention relates to a dimming switch device and methods for determining user operation events thereof; and in particular, to a dimming switch device with a light dimming function and methods to determine user operation events over the dimming switch device.
Conventional dimming switches are usually disposed on walls. As shown in
Therefore, another conventional dimming switch device is shown in
In view of the shortcomings of the conventional dimming switches due to the complexity of installation, the present invention provides a dimming switch device, comprising:
a key switch comprising,
a power state coupling circuit comprising:
a controller comprising:
When the switching element in the key switch is open-circuit, one polarity of the input AC power lines can only provide power to the dimming switch device through the rectifier diode, and when the switching element in the key switch is closed-circuit, the one polarity of the input AC power lines directly supplies power to the dimming switch device without being affected by the rectifier diode. Therefore, when the switching element in the key switch is open-circuit or closed-circuit, the corresponding output voltage waveforms of the common output terminal of the key switch will be different. Therefore, the power state coupling circuit can output different voltage waveforms to an input pin of the controller according to the output voltage waveforms of the common output terminal of the key switch The controller can thus determine whether the key switch is in an open state or a closed state, and at the same time, based on the durations of the open state or the closed state as well as the user operation sequences of the switching element, the controller can determine whether to turn off, to turn on, or to adjust the output of the driving circuit so as to control the electric load. The electric load may be a lamp or other electric appliances. As described above, since whether the switching element in the key switch is in the open circuit state or the closed circuit state can be directly sensed by the dimming switch device via the power lines, thus, only the pair of power lines between the key switch and the load is required, and needless to add other signal lines, so that the purpose of reducing the complexity of installation can be achieved.
Other objectives, advantages and novel features of the invention will become more apparent from the following detailed description when taken in conjunction with the accompanying drawings.
The following, with the drawings and the preferred embodiments of the present invention, further illustrates the technical means that the present invention adopts to achieve the intended purpose.
The first preferred embodiment of the present invention, referring to
Referring to
A user can control the switching element 113 to be either open-circuit or closed-circuit by way of general pressing, touch control, voice control or light control. The input terminal of the switching element 113 and the input terminal of the rectifying diode 114 are electrically connected to the common input terminal 111 and further electrically connected to one polarity 301 of an AC power source 30 (usually 43˜67 Hz, 100˜240V), and the output of the switching element 113 and the output of the rectifying diode 114 are all electrically connected to the common output terminal 112.
When the switching element 13 is in the open circuit state, the input voltage from the AC power source 30 will be rectified by the rectifying diode 114 before transmitted to the common output terminal 112. And when the switching element 13 is in the closed circuit state, the input voltage from the AC power source 30 will be transmitted to the common output terminal 112 directly through the switching element 13 without going through the rectifying diode 114. Thus the voltage at the common output terminal 112 of the key switch 11 will have a rectified voltage waveform when the switching element is in the open circuit state, and the voltage will have a normal AC voltage waveform when the switching element 13 is in the closed circuit state. As described above, it can be seen that the state of the key switch 11 is determined by the open circuit state and the closed circuit state of the switching circuit 113, and therefore the open circuit state and the closed circuit state of the switching circuit 113 respectively correspond to the open state and the closed state of the key switch 11.
Referring to
Referring to
As described above, if the switching element 13 is in the open circuit state, the output voltage Vout will have a rectified waveform which after passing through the power state coupling circuit 13 will generate a waveform with a frequency, say, Fc; on the other hand if the switching element 13 is in the closed circuit state, the output voltage Vout will have a normal AC waveform which after passing through the power state coupling circuit 13 will generate a waveform with a frequency twice of Fc. Hence the controller 15 can determine whether the switching element 113 of the key switch 11 is in the closed circuit state or the open circuit state based on the frequency of the voltage waveform from the input pin 151.
Referring to
Referring to
Besides the input pin 151, the output pin 152 and the DC power input 153 described above, the controller 15 may further include a wireless communication interface, such as WiFi, BT, Zigbee, 802.11a/b/g, or Home RF. So the controller 15 may receive and transmit wireless signals; hence the controller 15 can control the power ON/OFF as well as the duty cycle of the supplying power for the electric load 20 according to the information of the wireless signals received from the wireless interface.
As described above, the controller 15 will base on the voltage waveform of the input pin 151 to determine whether the switching element 113 of the key switch 11 is in the open circuit state or the closed circuit state. The controller 15 may further utilize firmware/software and parameters stored in its internal memory, external memory, or information received from the wireless communication interface to define and to determine user operation events over the key switch 11, for example, a single-click event (for example, continuously pressing for less than 2 seconds), a consecutive-N-clicks event (for example, N is a positive integer greater than 1), or a long-click event (for example, continuously pressing for more than 8 seconds), etc., and thus the controller 15 controls the output waveforms of its output pin 152 according to the above-mentioned user operation events. More detailed user operation events are described as follows:
Long-click event: when the key switch has entered the closed state over a T0 time interval.
Triggering event: when the key switch has entered the closed state over a T1 time interval.
Re-triggering event: after the triggering event occurred, the key switch had entered the open state not yet over a T2 interval, and then the key switch entered the closed state again and has stayed over the T1 interval.
Single-click event: after the triggering event occurred, the key switch has entered the open state over a T3 interval, wherein the T3 interval is longer than the T2 interval.
Consecutive-N-clicks event: after the re-triggering event occurred, N−2 triggering events occurred, until the key switch has entered the open state over the T3 interval (N is a positive integer greater than 1).
In another preferred embodiment, the above-mentioned events are otherwise defined as follows:
Long-click event: when the key switch has entered the open state over a T0 time interval.
Triggering event: when the key switch has entered the open state over a T1 time interval.
Re-triggering event: after the triggering event occurred, the key switch had entered the closed state not yet over a T2 interval, then the key switch entered the open state again and has stayed over the T1 interval.
Single-click event: after the triggering event occurred, the key switch has entered the closed state over a T3 interval, wherein the T3 interval is longer than the T2 interval.
Consecutive-N-clicks event: after the re-triggering event occurred, N−2 triggering events occurred, until the key switch has entered the closed state over the T3 interval (N is a positive integer greater than 1).
The controller 15 may use the information received by the wireless communication interface to update the aforementioned definitions of the user operation events as well as the parameters, for example, accepting only double clicks, or changing the values of time the intervals T0, T1, T2, or T3.
Referring to
Even though numerous characteristics and advantages of the present invention have been set forth in the foregoing description, together with details of the structure and function of the invention, the disclosure is illustrative only. Changes may be made in detail, especially in matters of shape, size, and arrangement of parts within the principles of the invention to the full extent indicated by the broad general meaning of the terms in which the appended claims are expressed.
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